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首页> 外文期刊>Limnology and oceanography, methods >cGMP signaling inhibits platelet shape change through regulation of the RhoA-Rho Kinase-MLC phosphatase signaling pathway
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cGMP signaling inhibits platelet shape change through regulation of the RhoA-Rho Kinase-MLC phosphatase signaling pathway

机译:CGMP信号传导通过调节rhOA-Rho激酶-MLC磷酸酶信号通路的调节抑制血小板形状变化

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Background: Platelet shape change, spreading and thrombus stability require activation of the actin cytoskeleton contractile machinery. The mechanisms controlling actin assembly to prevent unwanted platelet activation are unclear. Objectives: We examined the effects of nitric oxide on the signaling pathways regulating platelet actin-myosin activation. Results: S-nitrosoglutathione (GSNO) inhibited thrombin-induced platelet shape change and myosin phosphorylation of the myosin light chain (MLC). Because thrombin stimulates phospho-MLC through the RhoA/ ROCK dependent inhibition of MLC phosphatase (MLCP) we examined the effects of NO on this pathway. Thrombin caused the GTP loading and activation of RhoA, leading to the ROCK-mediated phosphorylation of MLCP on threonine 853 (thr(853)), which is known to inhibit phosphatase activity. Treatment of platelets with GSNO blocked ROCK-mediated increases in phosphoMLCP-thr(853) induced by thrombin. This effect was mimicked by the direct activator of protein kinase G, 8-pCPT-PET-cGMP, and blocked by the inhibition of guanylyl cyclase, but not inhibitors of protein kinase A. Further exploration of the mechanism demonstrated that GSNO stimulated the association of RhoA with protein kinase G (PKG) and the inhibitory phosphorylation (serine188) of RhoA in a cGMP-dependent manner. Consistent with these observations, in vitro experiments revealed that recombinant PKG caused direct phosphorylation of RhoA. The inhibition of RhoA by GSNO prevented ROCK-mediated phosphorylation and inhibition of MLCP activity. Conclusions: These data suggest novel crosstalk between the NO-cGMP-PKG and RhoA/ROCK signaling pathways to control platelet actin remodeling.
机译:背景:血小板形状变化,传播和血栓稳定性需要激活肌动蛋白细胞骨架收缩机械。控制肌动蛋白组件以防止不需要的血小板激活的机制尚不清楚。目的:我们检查了一氧化氮对调节血小板肌动蛋白 - 肌球蛋白活化的信号途径的影响。结果:S-亚硝基葡萄牙肝炎(GSNO)抑制凝血酶诱导的血吸虫轻链(MLC)的霉菌形状变化和肌蛋白酶磷酸化。因为凝血酶通过RHOA /岩石依赖性抑制MLC磷酸酶(MLCP)刺激磷光-MLC,所以我们检查了NO对该途径的影响。凝血酶导致RHOA的GTP加载和激活,导致苏氨酸853(THR(853))上的MLCP的岩石介导的磷酸化,这已知抑制磷酸酶活性。用GSNO阻断岩石介导的血小板的治疗凝血酶诱导的磷灰泵-CH(853)的增加。这种效果由蛋白激酶G,8-PCPT-PET-CGMP的直接活化剂模拟,并通过抑制瓜糊糊的环酶,但不抑制蛋白激酶A的抑制剂。该机制的进一步探索表明GSNO刺激了联想用蛋白激酶G(PKG)和RhOA的抑制性磷酸化(PKG)和以CGMP依赖性方式的抑制磷酸化(丝氨酸188)。与这些观察结果一致,体外实验表明,重组PKG导致RhOA的直接磷酸化。通过GSNO抑制RhOA预防岩石介导的磷酸化和对MLCP活性的抑制作用。结论:这些数据建议在No-CGMP-PKG和RHOO /岩石信号通路之间进行新型串扰,以控制血小板肌动蛋白重塑。

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